Need a code to understand the theory behind Neural Networks? Come, I'll help you
Input - Sona Mutemix Lofi - Made by https://twitter.com/alaylays
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chiara_hacking_1_en.mp4
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FUN FACT: Using a simple random gaussian noise with center 0 and std = 0.05 returned a similar output for both cases, but with audio in the left stereo only
Some classes from Didática Tech(PT-BR): https://didatica.tech/
I must say that most tutorials are quite confusing
https://medium.com/analytics-vidhya/2d-convolution-using-python-numpy-43442ff5f381
https://towardsdatascience.com/types-of-convolutions-in-deep-learning-717013397f4d
https://en.wikipedia.org/wiki/Softmax_function
https://github.com/CaptainE/RNN-LSTM-in-numpy/blob/master/RNN_LSTM_from_scratch.ipynb
https://towardsdatascience.com/backpropagation-in-a-convolutional-layer-24c8d64d8509